Tian Yuan, Zhao Guo Y, Fang Wei, Xu Qiang, Tan Ren X
Institute of Functional Biomolecules, State Key Laboratory of Pharmaceutical Biotechnology, Nanjing University, Nanjing 210093, P. R. China.
Sci Rep. 2015 May 21;5:10486. doi: 10.1038/srep10486.
Sphingolipids are biologically important and structurally distinct cell membrane components. Fusaruside (1) is a 10,11-unsaturated immunosuppressive fungal sphingolipid with medical potentials for treating liver injury and colitis, but its poor natural abundance bottlenecks its druggability. Here, fusaruside is clarified biosynthetically, and its efficacy-related 10,11-double bond can be generated under the regioselective catalysis of an unprecedented Δ10(E)-sphingolipid desaturase (Δ10(E)-SD). Δ10(E)-SD shares 17.7% amino acid sequence similarity with a C9-unmethylated Δ10-sphingolipid desaturase derived from a marine diatom, and 55.7% with Δ8(E)-SD from Fusarium graminearum. Heterologous expression of Δ10(E)-SD in Pichia pastoris has been established to facilitate a reliable generation of 1 through the Δ10(E)-SD catalyzed desaturation of cerebroside B (2), an abundant fungal sphingolipid. Site directed mutageneses show that the conserved histidines of Δ10(E)-SD are essential for the 10,11-desaturation catalysis, which is also preconditioned by the C9-methylation of the substrate. Moreover, Δ10(E)-SD confers improved survival and faster growth to fungal strains at low temperature and high salinity, in parallel with to higher contents of 1 in the mycelia. Collectively, the investigation describes a new Δ10(E)-sphingolipid desaturase with its heterologous expression fundamentalizing a biotechnological supply of 1, and eases the follow-up clarification of the immunosuppression and stress-tolerance mechanism.
鞘脂是具有重要生物学意义且结构独特的细胞膜成分。镰刀菌素(1)是一种具有10,11 - 不饱和双键的免疫抑制性真菌鞘脂,具有治疗肝损伤和结肠炎的医学潜力,但其天然丰度较低限制了其成药可能性。在此,对镰刀菌素进行了生物合成阐明,其与药效相关的10,11 - 双键可在一种前所未有的Δ10(E) - 鞘脂去饱和酶(Δ10(E) - SD)的区域选择性催化下生成。Δ10(E) - SD与源自海洋硅藻的C9 - 未甲基化的Δ10 - 鞘脂去饱和酶的氨基酸序列相似度为17.7%,与禾谷镰刀菌的Δ8(E) - SD的相似度为55.7%。已在毕赤酵母中建立了Δ10(E) - SD的异源表达,以通过Δ10(E) - SD催化丰富的真菌鞘脂脑苷脂B(2)的去饱和反应可靠地生成1。定点诱变表明,Δ10(E) - SD的保守组氨酸对于10,11 - 去饱和催化至关重要,这也是以底物的C9 - 甲基化为前提条件的。此外,Δ10(E) - SD赋予真菌菌株在低温和高盐度下更好的存活率和更快的生长速度,同时菌丝体中1的含量更高。总体而言,该研究描述了一种新的Δ10(E) - 鞘脂去饱和酶,其异源表达为1的生物技术供应奠定了基础,并简化了免疫抑制和应激耐受机制的后续阐明。